Analysis of Growth and Water Relations of Tomato Fruits in Relation to Air Vapor Pressure Deficit and Plant Fruit Load

被引:0
作者
Soraya Guichard
Christian Gary
Cherubino Leonardi
Nadia Bertin
机构
[1] Unité Plantes et Systèmes de Culture Horticoles,Institut National de la Recherche Agronomique
[2] Domaine St-Paul,Dipartimento di OrtoFloroArboricoltura e Tecnologie Agroalimentari
[3] Site Agroparc,undefined
[4] Catania University,undefined
来源
Journal of Plant Growth Regulation | 2005年 / 24卷
关键词
Tomato; Water flux; Water potential; Xylem; Phloem; Transpiration; Fruit growth; VPD; Plant fruit load; Fruit quality;
D O I
暂无
中图分类号
学科分类号
摘要
The influence of air vapor pressure deficit (VPD) and plant fruit load on the expansion and water relations of young tomato fruits grown in a glasshouse were evaluated under summer Mediterranean conditions. The contributions of phloem, xylem and transpiration fluxes to the fruit volume increase were estimated at an hourly scale from the growth curves of intact, heat-girdled and detached fruits, measured using displacement transducers. High VPD conditions reduced the xylem influx and increased the fruit transpiration, but hardly affected the phloem influx. Net water accumulation and growth rate were reduced, and a xylem efflux even occurred during the warmest and driest hours of the day. Changes in xylem flux could be explained by variations in the gradient of water potential between stem and fruit, due to changes in stem water potential. Misting reduced air VPD and alleviated the reduction in fruit volume increase through an increase in xylem influx and a decrease in fruit transpiration. Under low fruit load, the competition for assimilates being likely reduced, the phloem flux to fruits increased, similarly to the xylem and transpiration fluxes, without any changes in the fruit water potential. However, different diurnal dynamics among treatments assume variable contributions of turgor and osmotic pressure in F3 and F6 fruits, and hypothetical short-term variations in the water potential gradient between stem and fruit, preventing xylem efflux in F3 fruits.
引用
收藏
页码:201 / 213
页数:12
相关论文
共 146 条
  • [1] Abbott JD(1985)Water management of greenhouse tomatoes HortScience 20 688-690
  • [2] Peet MM(1997)Evaluation of photoassimilate flux through a tomato pedicel Biotronics 26 21-29
  • [3] Willits DH(2000)Seasonal evolution of the quality of fresh glasshouse tomatoes under Mediterranean as affected by air vapour deficit and plant fruit load Ann Bot 85 741-750
  • [4] Gough RE(1993)Greenhouse tomato crops transpiration: application to irrigation control Acta Hort 335 381-387
  • [5] Araki T(1988)Modelling of water potential and water uptake rate of tomato plants in greenhouse: preliminary results Acta Hort 229 177-184
  • [6] Kitano M(2002)Water import in the young tomato fruit limited by pedicel resistance and calyx transpiration Func Plant Biol 29 631-641
  • [7] Eguchi H(1981)The constituents of tomato fruit—the influence of environment, nutrition and genotype CRC Crit Rev Food Sci Nutr 15 205-280
  • [8] Bertin N(1986a)Translocation of calcium in relation to tomato fruit growth Ann Bot 58 679-688
  • [9] Guichard S(1986b)Effects of osmotic potential in nutrient solution on diurnal growth of tomato fruit J Exp Bot 37 1294-1302
  • [10] Leonardi C(2001)Theoretical analysis of systematic errors introduced by a pedicel-girdling technique used to estimate separately the xylem and phloem flows J Theor Biol 213 435-446